Chemistry: Atoms First
Chemistry: Atoms First
3rd Edition
ISBN: 9781259638138
Author: Julia Burdge, Jason Overby Professor
Publisher: McGraw-Hill Education
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Chapter 8.3, Problem 8.6WE

(a)

Interpretation Introduction

Interpretation: for the given reaction, the mass of ammonium nitrate required to produce 10g of nitrous oxide and the mass of water formed are needed to be determined.

Concept introduction:

  • Balanced chemical equation of a reaction is written according to law of conservation of mass.
  • Mole ratio between the reactants and a products of a reaction are depends upon the coefficients of reactant and product in a balanced chemical equation.
  • Number of moles of a substance, from its given mass is,

    Number of moles=GivenmassMolecularmass

  • Number of grams of a substance from its number of moles is,

    Number of moles×Molecularmass in grams=Numberofgrams

To find: the number of moles of nitrous oxide formed in the given reaction.

(a)

Expert Solution
Check Mark

Explanation of Solution

The mass of nitrous oxide is given as 10g.

Equation for Number of moles of a substance, from its given mass is,

Number of moles=GivenmassMolecularmass

Therefore,

The number of moles of nitrous oxide formed in the given reaction is,

Number of moles=10g44.02g=0.227mol

The balanced equation of the reaction is given as,

NH4NO3N2O+2H2O

The mole ratio between reactant NH4NO3 and product N2O is 1:1.

The number of moles of N2O in the given reaction is found as 0.227mol.

Therefore,

The number of moles of hydrogen required to react with 0.0880mol of nitrogen in the given reaction is 1×0.227mol=0.227mol

Equation for Number of grams of a substance from its number of moles is,

Number of moles×Molecularmass in grams=Numberofgrams

Then,

The mass of ammonium nitrate (NH4NO3) is,

0.227×80.05g=18.2g

(b)

Interpretation Introduction

Interpretation: for the given reaction, the mass of ammonium nitrate required to produce 10g of nitrous oxide and the mass of water formed are needed to be determined.

Concept introduction:

  • Balanced chemical equation of a reaction is written according to law of conservation of mass.
  • Mole ratio between the reactants and a products of a reaction are depends upon the coefficients of reactant and product in a balanced chemical equation.
  • Number of moles of a substance, from its given mass is,

    Number of moles=GivenmassMolecularmass

  • Number of grams of a substance from its number of moles is,

    Number of moles×Molecularmass in grams=Numberofgrams

To find: the mass of water formed in the given reaction.

(b)

Expert Solution
Check Mark

Explanation of Solution

The balanced equation of the reaction is given as,

NH4NO3N2O+2H2O

The mole ratio between products N2O and H2O is 1:2.

The number of moles of N2O in the given reaction is found as 0.227mol.

Therefore,

The number of moles of H2O formed in the given reaction is 2×0.227mol=0.454mol

Equation for Number of grams of a substance from its number of moles is,

Number of moles×Molecularmass in grams=Numberofgrams

Then,

The mass of H2O formed is,

0.227×18.02g=8.18g

Conclusion

Conclusion

The mass of ammonium nitrate required to produce 10g of nitrous oxide and the mass of water formed are determined according to the given data’s.

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Chapter 8 Solutions

Chemistry: Atoms First

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